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Multifunctional nanomaterials for advanced molecular imaging and cancer therapy.

机译:用于先进分子成像和癌症治疗的多功能纳米材料。

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摘要

Nanotechnology offers tremendous potential for use in biomedical applications, including cancer and stem cell imaging, disease diagnosis and drug delivery. The development of nanosystems has aided in understanding the molecular mechanisms of many diseases and permitted the controlled nanoscale manipulation of biological phenomena. In recent years, many studies have focused on the use of several kinds of nanomaterials for cancer and stem cell imaging and also for the delivery of anticancer therapeutics to tumor cells. However, the proper diagnosis and treatment of aggressive tumors such as brain and breast cancer requires highly sensitive diagnostic agents, in addition to the ability to deliver multiple therapeutics using a single platform to the target cells. Addressing these challenges, novel multifunctional nanomaterial-based platforms that incorporate multiple therapeutic and diagnostic agents, with superior molecular imaging and targeting capabilities, has been presented in this work.;The initial part of this work presents the development of novel nanomaterials with superior optical properties for efficiently delivering soluble cues such as small interfering RNA (siRNA) into brain cancer cells with minimal toxicity. Specifically, this section details the development of non-toxic quantums dots for the imaging and delivery of siRNA into brain cancer and mesenchymal stem cells, with the hope of using these quantum dots as multiplexed imaging and delivery vehicles. The use of these quantum dots could overcome the toxicity issues associated with the use of conventional quantum dots, enabled the imaging of brain cancer and stem cells with high efficiency and allowed for the delivery of siRNA to knockdown the target oncogene in brain cancer cells.;The latter part of this thesis details the development of nanomaterial-based drug delivery platforms for the co-delivery of multiple anticancer drugs to brain tumor cells. In particular, this part of the thesis focuses on the synthesis and use of a biodegradable dendritic polypeptide-based nanocarrier for the delivery of multiple anticancer drugs and siRNA to brain tumor cells. The co-delivery of important anticancer agents using a single platform was shown to increase the efficacy of the drugs manyfold, ensuring the cancer cell-specific delivery and minimizing dose limiting toxicities of the individual drugs. This would be of immense importance when used in vivo.
机译:纳米技术为生物医学应用提供了巨大的潜力,包括癌症和干细胞成像,疾病诊断和药物输送。纳米系统的发展有助于理解许多疾病的分子机制,并允许对生物现象进行受控的纳米级操纵。近年来,许多研究都集中在几种纳米材料用于癌症和干细胞成像以及向肿瘤细胞递送抗癌治疗剂方面。但是,正确的诊断和治疗侵袭性肿瘤(例如脑癌和乳腺癌)除了需要使用单一平台将多种治疗药物递送至靶细胞的能力外,还需要高度敏感的诊断剂。为解决这些挑战,本工作提出了新颖的基于多功能纳米材料的平台,该平台结合了多种治疗和诊断剂,具有出色的分子成像和靶向能力。该工作的初始部分介绍了具有优异光学性能的新型纳米材料的开发。用于以最小的毒性将可溶性信号(例如小干扰RNA(siRNA))有效地传递到脑癌细胞中。具体而言,本节详细介绍了用于将siRNA成像和递送到脑癌和间充质干细胞中的无毒量子点的开发,希望将这些量子点用作多重成像和递送载体。这些量子点的使用可以克服与传统量子点使用相关的毒性问题,使脑癌和干细胞的成像效率更高,并允许递送siRNA敲低脑癌细胞中的靶癌基因。本文的后半部分详细介绍了基于纳米材料的药物递送平台的开发,该平台可将多种抗癌药物共同递送至脑肿瘤细胞。特别地,本文的这一部分集中于可生物降解的基于树突多肽的纳米载体的合成和用途,以将多种抗癌药物和siRNA递送至脑肿瘤细胞。使用单一平台共同递送重要的抗癌药物可提高多种药物的功效,从而确保癌细胞特异性递送并最大程度地降低单个药物的剂量限制性毒性。当在体内使用时,这将是非常重要的。

著录项

  • 作者

    Subramaniam, Prasad.;

  • 作者单位

    Rutgers The State University of New Jersey - New Brunswick.;

  • 授予单位 Rutgers The State University of New Jersey - New Brunswick.;
  • 学科 Chemistry General.;Nanotechnology.;Health Sciences Oncology.;Biology Cell.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 154 p.
  • 总页数 154
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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